Weike Wang, Xuelian Zhang, Mengdi Wang, Zhuohang Jing, Liyuan Liu, Dong Zhou, Jiankang Zhu
Conductive metal–organic frameworks (MOFs) are of considerable importance because of their potential applications in various electronics. And integrating conductive MOFs with flexible substrates represents a promising strategy for preparing different flexible electronic devices. This study first developed a flexible and highly conductive TCNQ@Cu-BDC film on a polyester fabric substrate. Here, a copper layer was first deposited on the substrate via magnetron sputtering, converted into Cu(OH) 2 nanowire templates through alkaline solution treatment, and subsequently transformed into a Cu-BDC MOF film via hydrothermal synthesis. Then the redox-active, conjugated 7,7,8,8-tetracyanoquinodimethane (TCNQ) guest molecules were introduced into the pores of activated Cu-BDC MOF through liquid-phase doping, and the electrical conductivity of TCNQ@Cu-BDC film is remarkably enhanced by ∼2 orders of magnitude (approximately 180-fold increase) compared with the pristine MOF. Characterization demonstrates that when the TCNQ molecules are incorporated into the pores of Cu-BDC, they can occupy the open copper sites and can simultaneously undergo redox reactions with the organic ligands. During this process, the organic ligands are oxidized, and some Cu 2+ ions are reduced as TCNQ 2– ions are generated, which promotes the transfer of electric charges among the MOF framework and significantly improves the electric conductivity of the host–guest system.